N-Doped Porous Carbon Based on Anion and Cation Storage Chemistry for High-Energy and Power-Density Zinc Ion Capacitor.

Adv Sci (Weinh)

State Key Laboratory of Chemistry and Utilization of Carbon Based Energy Resources, Insitute of Applied Chemistry, College of Chemistry, Xinjiang University, Urumqi, Xinjiang, 830046, P. R. China.

Published: November 2024

AI Article Synopsis

  • - Zinc ion hybrid capacitors (ZIHCs) are cost-effective, safe, and eco-friendly options for large-scale energy storage, but their energy density suffers from the lack of advanced cathode materials.
  • - A newly developed cathode called N-doped porous carbon (CFeN-2), created from coal pitch, exhibits high nitrogen content, large surface area, and excellent microporosity, facilitating advanced energy storage through dual-ion mechanisms.
  • - When used in ZIHCs, CFeN-2 achieves impressive performance metrics, including an energy density of 142.5 W h/kg, high power density, and remarkable cycling stability with 77% capacity retention after 10,000 cycles, significantly outperform

Article Abstract

Zinc ion hybrid capacitors (ZIHCs) show promise for large-scale energy storage because of their low cost, highly intrinsic safety, and eco-friendliness. However, their energy density has been limited by the lack of advanced cathodes. Herein, a high-capacity cathode material named N-doped porous carbon (CFeN-2) is introduced for ZIHCs. CFeN-2, synthesized through the annealing of coal pitch with FeCl·6HO as a catalytic activator and melamine as a nitrogen source, exhibits significant N content (10.95 wt%), a large surface area (1037.66 m g), abundant lattice defects and ultrahigh microporosity. These characteristics, validated through theoretical simulations and experimental tests, enable a dual-ion energy storage mechanism involving Zn ions and CFSO anions for CFeN-2. When used as a cathode in ZIHCs, CFeN-2 achieves a high-energy density of 142.5 W h kg and a high-power density of 9500.1 W kg. Furthermore, using CFeN-2 ZIHCs demonstrate exceptional performance with 77% capacity retention and nearly 100% coulombic efficiency after 10 000 cycles at 10 A g, showcasing substantially superior performance to current ZIHCs. This study offers a pathway for developing high-energy and high-power cathodes derived from coal pitch carbon for ZIHC applications.

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Source
http://www.ncbi.nlm.nih.gov/pmc/articles/PMC11600265PMC
http://dx.doi.org/10.1002/advs.202407635DOI Listing

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